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Autonomous Gate Drivers for TCM-Based Soft-Switched Converters: Design Approach and Experimental Validation
KTH, School of Electrical Engineering and Computer Science (EECS), Electrical Engineering, Electric Power and Energy Systems.ORCID iD: 0000-0002-4178-7829
RISE Research Institutes of Sweden, Gothenburg, Sweden.ORCID iD: 0009-0004-7873-4466
KTH, School of Electrical Engineering and Computer Science (EECS), Electrical Engineering, Electric Power and Energy Systems.ORCID iD: 0000-0002-2167-4616
RISE Research Institutes of Sweden, Stockholm, Sweden.ORCID iD: 0000-0002-5027-3491
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2025 (English)In: IEEE Transactions on Industrial Electronics, ISSN 0278-0046, E-ISSN 1557-9948Article in journal (Other academic) Epub ahead of print
Abstract [en]

This paper presents a soft-switched buck converter using Autonomous Gate Drivers (AGDs) for power electronic converters. Operating at a 400 V DC-link, typical of Electric Vehicles (EVs) and industrial systems, the converter achieves Zero Voltage Switching (ZVS) during turn-on and turn-off via AGD circuitry and optimized snubber capacitance. Operating in Triangular Current Mode (TCM), the converter utilizes inductor current ripple to enable ZVS. Experimental results confirm reliable soft-switching and suppression of voltage overshoot under realistic conditions. While the validation uses a buck converter, the proposed AGDs are directly applicable to more complex converters, including three-phase inverters with sinusoidal reference currents, relevant to EVs, renewable energy, and industrial drives. This work demonstrates a scalable solution for reducing switching losses and improving efficiency in advanced high-voltage converters.

Place, publisher, year, edition, pages
Institute of Electrical and Electronics Engineers (IEEE), 2025.
Keywords [en]
Autonomous gate driver (AGD), electric vehicles (EVs), zero-voltage switching (ZVS), soft switching, triangular current mode (TCM), snubber capacitance, high-efficiency power conversion, SiC MOSFETs, traction inverter
National Category
Engineering and Technology
Research subject
Electrical Engineering
Identifiers
URN: urn:nbn:se:kth:diva-370475OAI: oai:DiVA.org:kth-370475DiVA, id: diva2:2001148
Funder
Swedish Energy Agency, 44833-1/P2017-90020Available from: 2025-09-25 Created: 2025-09-25 Last updated: 2025-09-26
In thesis
1. Silicon Carbide (SiC)-Based Soft-Switched Power Converters with Autonomous Gate Drivers for Electric Vehicles
Open this publication in new window or tab >>Silicon Carbide (SiC)-Based Soft-Switched Power Converters with Autonomous Gate Drivers for Electric Vehicles
2025 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

The electrification of transportation demands power conversion systems that are highly efficient, compact, reliable, and exhibit low electromagnetic interference (EMI). In electric vehicle (EV) drive applications, the two-level three-phase traction inverter is a key component that should exhibit high efficiency across varying loads and reliable operation at elevated switching frequencies.

This thesis presents a scalable, high-performance inverter design that combines autonomous gate drivers (AGDs) with optimized magnetic components. It incorporates snubber capacitors across each SiC MOSFET and a compact LC low-pass filter between the inverter output and motor terminals to enable effective soft switching and reduce EMI. This approach addresses key challenges in EV power conversion, offering a path toward compact, efficient, and EMI-compliant traction inverters for next-generation electric mobility.

The novel AGD design achieves zero-voltage switching (ZVS) under triangular current mode (TCM) control by continuously monitoring the switch voltage and current to determine optimal switching instants in real time. Direct sensing of switch conditions removes communication delays and ensures efficient ZVS at both turn-on and turn-off. The turn-off timing is set by an externally defined reference current transmitted through a galvanically isolated amplifier.

Simulation of a 10 kW two-level, three-phase inverter employing the proposed AGDs demonstrates over 99 % efficiency, sinusoidal current waveforms, and fast torque response with minimal overshoot and EMI. The integrated LC filter improves the output waveform quality while supporting soft-switching operation.

Experimental validation of the AGD concept was performed using a buck converter prototype. The AGDs operated independently of a central controller, initiating turn-on based on negative voltage detection and enabling lossless turn-off through a snubber capacitor. The system achieved ZVS at both transitions, confirming the practicality and scalability of the proposed gate-driving approach. For current sensing, the AGD employs the on-state resistance (Rds(on)) of SiC MOSFETs, eliminating the need for external shunt resistors. This reduces component count, avoids parasitic effects, and potentially increases reliability.

The thesis also investigates the design of filter inductors suitable for TCM-based ZVS inverters. Three prototypes were constructed using ferrite pot cores with Litz wire, copper foil, and solid round copper wire windings. Inductance was measured experimentally, and power losses were evaluated through Ansys Maxwell simulations under high ripple current and variable frequency conditions. Litz wire demonstrated superior performance in minimizing both copper and core losses. A dual-inductor configuration per phase—six inductors in total—is recommended for effective current handling and thermal management.

Abstract [sv]

Elektrifieringen av transport kräver effektomvandlingssystem som är mycket effektiva, kompakta, pålitliga och som uppvisar låg elektromagnetisk störning (EMI). I elfordonsapplikationer (EV) är den tvånivåiga trefasiga drivomvandlaren en nyckelkomponent som måste ha hög effektivitet över varierande belastningar och pålitlig drift vid höga switchfrekvenser.

Denna avhandling presenterar en skalbar och högpresterande omvandlardesign som kombinerar autonoma gate-drivare (AGD) med optimerade magnetiska komponenter. Den inkluderar snubber-kondensatorer över varje SiC MOSFET och ett kompakt LC-lågpassfilter mellan omvandlarens utgång och motorterminalerna för att möjliggöra effektiv mjukomkoppling och minska EMI. Denna metod tar itu med viktiga utmaningar inom EV-effektomvandling och banar väg för kompakta, effektiva och EMI-kompatibla drivomvandlare för nästa generations elektriska mobilitet.

Den nya AGD-designen uppnår nollspänningsomkoppling (ZVS) under triangulär strömmode (TCM) styrning genom att kontinuerligt övervaka switchens spänning och ström för att bestämma optimala omskiftningstidpunkter i realtid. Direkt avkänning av switchförhållanden eliminerar kommunikationsförseningar och säkerställer effektiv ZVS vid både på- och avslagning. Avslagnings-tidpunkten styrs av en externt definierad referensström som överförs via en galvaniskt isolerad förstärkare.

Simulering av en 10kW tvånivåig trefasomvandlare med de föreslagna AGD:erna visar över 99% verkningsgrad, sinusformade strömvågor och snabb momentrespons med minimal överslängning och EMI. Det integrerade LC-filtret förbättrar utgångsvågformen samtidigt som det stödjer mjukomkopplingsdrift.

Experimentell validering av AGD-konceptet utfördes med en buck- omvandlarprototyp. AGD:erna fungerade oberoende av en central styrenhet, initierade påslagning baserat på negativ spänningsdetektion och möjliggjorde förlustfri avslagning genom en snubber-kondensator. Systemet uppnådde ZVS vid båda övergångarna, vilket bekräftar praktikaliteten och skalbarheten i den föreslagna gate-drivningsmetoden. För strömmätning använder AGD:erna SiC MOSFET:arnas påslagsresistans (Rds(on)), vilket eliminerar behovet av externa shuntmotstånd. Detta minskar komponentantalet, undviker parasitiska effekter och ökar potentiellt tillförlitligheten.

Avhandlingen undersöker även utformningen av filterinduktorer lämpliga för TCM-baserade ZVS-omvandlare. Tre prototyper konstruerades med ferritpotkärnor och lindningar av Litz-tråd, kopparfolie och solida runda koppartrådar. Induktansen mättes experimentellt och effektförluster utvärderades med Ansys Maxwell-simuleringar under höga ripple-strömmar och varierande frekvenser. Litz-tråden visade överlägsen prestanda vad gäller minimering av både koppar- och kärnförluster. En dubbelinduktor-konfiguration per fas — totalt sex induktorer — rekommenderas för effektiv strömhantering och termisk kontroll.

Place, publisher, year, edition, pages
Stockholm: KTH Royal Institute of Technology, 2025. p. ix, 69
Series
TRITA-EECS-AVL ; 2025:84
Keywords
Autonomous Gate Drivers (AGDs), Electric Vehicles (EVs), Electromagnetic Interference (EMI), Finite Element Method (FEM), Filter Inductor, Printed Circuit Board (PCB), Permanent Magnet Synchronous Motor (PMSM), Silicon Carbide (SiC), Soft Switching, Traction Inverter, Triangular Current Mode (TCM), Zero Voltage Switching (ZVS), Autonoma grinddrivare (AGD), Elfordon (EV), Elektromagnetiska störningar (EMI), Finita elementmetoden (FEM), Filterinduktor, Tryckt kretskort (PCB), Permanentmagnet-synkronmotor (PMSM), Kiselkarbid (SiC), Drivomriktare, Triangulärt strömsläge (TCM), Mjukomkoppling, Nollspänningsswitchning (ZVS)
National Category
Engineering and Technology
Research subject
Electrical Engineering
Identifiers
urn:nbn:se:kth:diva-370486 (URN)978-91-8106-405-6 (ISBN)
Public defence
2025-10-24, https://kth-se.zoom.us/j/63418851724, Room no: 132, Code: F3 (Flodis) , Floor: 02, Lindstedtsvägen 26 & 28, Stockholm, 13:00 (English)
Opponent
Supervisors
Funder
Swedish Energy Agency, 44833-1/P2017-90020
Note

QC 20250926

Available from: 2025-09-26 Created: 2025-09-26 Last updated: 2025-10-01Bibliographically approved

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Abbas, KhizraSarmast Ghahfarokhi, ShahriarKostov, Konstantin StoychevNee, Hans-Peter

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